• Title/Summary/Keyword: 추정 Bit Error Rate (BER)

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Performance Evaluation of Octonion Space-Time Coded Physical Layer Security in MIMO Systems (MIMO 시스템에서 옥토니언 시공간 부호를 이용한 물리계층 보안에 대한 성능 분석)

  • Young Ju Kim;BeomGeun Kwak;Seulmin Lim;Cheon Deok Jin
    • Journal of Broadcast Engineering
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    • v.28 no.1
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    • pp.145-148
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    • 2023
  • Open-loop Octonion space-time block code for 4 transmit antenna system is considered and random phases are applied to 4 transmit antennas for physical layer security. When an illegal hacker estimates the random phases of 1 through 4 transmit antennas with maximum likelihood (ML), this letter analyzes the bit error rate (BER) performances versus signal-to-noise ratio (SNR). And the Octonion code in the literature[1] does not have full orthogonality so, this letter employs the perfect orthogonal Octonion code. When the hacker knows that the random phases are 2-PSK constellations and he should estimate all the 4 random phases, the hacking is impossible until 100dB. When the hacker possibly know that some of the random phases, bit error rate goes down to 10-3 so, the transmit message could be hacked.

Performance of Underwater Communication in Low Salinity Layer at the Western Sea of Jeju (제주도 서부 해역의 저염수층을 고려한 수중통신 성능)

  • Bok, Tae-Hoon;Kim, Ju-Ho;Lee, Chong-Hyun;Bae, Jin-Ho;Paeng, Dong-Guk;Pang, Ig-Chan;Lee, Jong-Kil
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.48 no.1
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    • pp.16-24
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    • 2011
  • The sound speed of seawater can be calculated by the empirical formula as a function of temperature, salinity and pressure. It is little affected by salinity because the average salinity is 34 psu and varies within a few psu seasonally and spatially in the ocean. Recently, low-salinity water of 24 psu flows into the western sea area of Jeju Island due to the flood of the Yangtze River in China during summer, affecting sound speed profile. In this paper, it was analyzed how environmental changes affected to the underwater communication - the sound speed of low-salinity water was calculated, and the communication channel was estimated by the simulated acoustic rays while the transmitting and receiving depth and the range were varied with and without the low-salinity layer. And The BER (Bit error rate) was calculated by BPSK(Binary phase shift key) modulation and the effects of the low-salinity water on the BER was investigated. The sound speed profile was changed to have positive slope by the low-salinity layer at the sub-surface up to 20 m of depth, forming acoustic wave propagation channel at the sub-surface resulting in the decrease of most of the BER Consequently, this paper suggests that it is important to consider changes of the ocean environment for correctly analyzing the underwater communication and the detection capability.